1.Diagnosis and treatment of urethral mucosa prolapse in female children
Fan YANG ; Yiding SHEN ; Chang TAO ; Guangjie CHEN ; Dehua WU ; Yong HUANG ; Zheming XU ; Daxing TANG
Chinese Journal of Urology 2019;40(8):611-614
Objective To review the clinical characteristics of urethral prolapse in female children and summarize our experience of treatment.Methods A retrospective analysis of the clinical characteristics of 102 patients with urethral prolapse from January 2007 to December 2017 was conducted at The Children's Hospital of Zhejiang University School of Medicine.The age of the patients ranged from 8-156 months with an median of 80 months.The presenting symptoms in the 102 girls were:bleeding in 57 patients (55.9%),mass in 31 patients (30.4%),and dysuria/urinary frequency,urgent and pain in 14 patients (13.4%).In all,58 patients were managed conservatively with Sitz baths as their masses were small,39 underwent prolapse reduction under topical anesthesia and Sitz baths because their mass were large,and 5 patients were treated by excision of the prolapsed urethral mucosa with four-quadrant excisional technique because thrombosed urethral prolapse at first visit.Results A total of 89 patients were cured after conservative treatment (87.3%),8 patients were converted to surgical treatment because frequent recurrence with conservative treatment.No urethral stricture,active hemorrhage and recurrent were found in 13 patients after operation.Conclusions The most common clinical manifestations of urethral prolapse are urethral mass and bleeding.Most patients can be cured by conservative treatment.The patients whose symptoms were severe or suffered from frequent recurrence of urethral prolapse should be managed with surgical excision.
2.Hospital Networked Medical Equipment Safety Management.
Mangmang ZHANG ; Kun ZHENG ; Yunming SHEN ; Zhongkuan LIN ; Zheming LI
Chinese Journal of Medical Instrumentation 2018;42(4):303-304
With the continuous improvement and wide application of hospital information, more and more medical equipment is integrated into the hospital information systems, which brings new work contents and challenges for the traditional clinical engineers. This paper reviews and evaluates the current situation of networked medical equipment in the hospital. By applying the ISO 80001 and the MDS(Manufacturer Disclosore Statement for Medical Device Security), the paper puts forward the measures and suggestions for the security management of networked medical equipment.
Equipment Safety
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Equipment and Supplies
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Hospital Information Systems
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Safety Management
3.Comparison of Determination Methods of Saccharides in Polygonatum cyrtonema and Optimization of Its Wine- steaming Technology
Dongmei PAN ; Weishan CAI ; Yeting LIANG ; Ying SHEN ; Zheming SHI ; Yankui YI
China Pharmacy 2021;32(24):2994-3000
OBJECTIVE:To compare the methods for the con tent determination of polysaccharide and reducing sugar in Polygonatum cyrtonema, and to optimize the wine-steaming technology of P. cyrtonema . METHODS : The contents of polysaccharide in P. cyrtonema were determined by anthrone-sulfuric acid method and phenol-sulfuric acid method. The contents of reducing sugar in P. cyrtonema were determined by anthrone-sulfuric acid method , phenol-sulfuric acid method and 3, 5-dinitrosalicylic acid (DNS)method,respectively. Taking appearance and property scores of processed products ,the contents of polysaccharide,reducing sugar and total sugar as indicators ,the amount of alcohol added ,steaming time and moistening time as factors,the wine-steaming technology of P. cyrtonema was optimized by Latin square design. The contents of polysaccharide , reducing sugar and total sugar were compared before and after steaming. RESULTS :The linear ranges of polysaccharide and reducing sugar obtained by anthrone-sulfuric acid method were both 0.006 6-0.033 mg/mL(R2=0.999 9). RSDs of precision , stability(90 min)and reproducibility tests were all lower than 3% and 2%,respectively. Average recoveries were 99.75%(RSD= 0.48%,n=6)and 103.40%(RSD=1.25%,n=6),respectively. The linear ranges of polysaccharide and reducing sugar obtained by phenol-sulfuric acid method were both 0.002 5-0.025 mg/mL(R2=0.999 2). RSDs of precision ,stability (90 min) and reproducibility tests were all lower than 5% and 6%,respectively. Average recoveries were 112.80%(RSD=2.36%,n=6)and 99.20%(RSD=3.47%,n=6). The linear range of reducing sugar obtained by DNS method was 0.01-0.18 mg/mL(R2=0.999 9). RSDs of precision ,stability(90 min)and reproducibility tests were all lower than 2%. Average recoveries was 96.95%(RSD= 1.19%,n=6). The optimal wine-steaming technology of P. cyrtonema included the amount of alcohol added of 20%,moistening time of 2 h and steaming time of 7 h. RSDs of average contents of polysaccharide ,reducing sugar and total sugar in wine-steamed products were all lower than 3% in 3 times of validation tests (n=3). The average contents of polysaccharide ,reducing sugar and total sugar in 4 batches of P. cyrtonema were 16.3%,11.2% and 27.4%;those of 4 batches of wine-steamed products were 3.4%, 61.0% and 64.4%,respectively. CONCLUSIONS :The anthrone- ) sulfuric acid method is the best for the determination of poly- saccharide in P. cyrtonema ;DNS method is the best for the pandongmei1228@126.com determination of reducing sugar in P. cyrtonema. The content ofpolysaccharide in wine-steamed products is decreased signifi- cantly,while the contents of reducing sugar and total sugar are increased significantly.
4.Identifications and characteristics of organic ultraviolet filters in indoor air
Hong LU ; Ze WANG ; Hanbo CUI ; Yihui JIN ; Fan YANG ; Lili FENG ; Xiaofang HU ; Zheming SHEN ; Tao YUAN
Journal of Environmental and Occupational Medicine 2021;38(12):1345-1349
Background Organic ultraviolet (UV) filters are widely used in personal care products. So far, relevant studies on organic UV filters in indoor dust have been reported. Objective This study aims to establish a thermal desorption combined with gas chromatography-mass spectrometry (TD-GCMS) method to identify organic UV filters in indoor air collected from different indoor environments, so as to reveal the pollution levels and characteristics of organic UV filters in indoor environment. Methods Based on the standard indoor air sampling protocol, a total of 60 samples were collected from eight different kinds of indoor environments (male and female dormitory rooms, offices, labs, barber shops, printing shops, hotels, and private cars) on and nearby Minhang Campus of Shanghai Jiao Tong University from August to November, 2020. The concentrations of six common organic UV filters, including homosalate (HMS), 2-ethylhexyl salicylate (EHS), 3-(4-methylbenzylidene)-camphor (4-MBC), isoamyl 4-methoxycinnamate (IMC), octocrylene (OC), and octyl 4-methoxycinnamate (EHMC), in the air of different indoor environments were detected by TD-GCMS. Furthermore, the correlations of individual organic UV filters in different indoor environments were analysed. Results Under optimized detection conditions, the correlation coefficients of the quantitative standard curves of selected six organic UV filters were all at or above 0.997. The relative standard deviations of 1 mg·L−3 samples ranged from 1.74% to 7.11%, and the recoveries ranged from 67.17% to 106.5%. The relative standard deviations of 10 mg·L−3 samples ranged from 3.59% to 8.76%, and the recoveries ranged from 78.80% to 126.60%. The detection rates of the other five organic UV filters except IMC were all at or more than 92% in eight different kinds of indoor air. The median concentration of total organic UV filters was 75.17 ng·m−3, and EHS presented the highest median concentration of 28.55 ng·m−3. Regarding different indoor environments, the highest concentration of total organic UV filters was found in the female dormitory samples, 154.98 ng·m−3. The respective pair-analysis among HMS, EHMC, OC, and EHS of all indoor air samples reached a significant level of correlation (r=0.40-0.61, P<0.01). Conclusion The TD-GCMS method is satisfactory for the determination of organic UV filters in indoor air. EHS, EHMC, HMS, OC, and 4-MBC are identified in selected eight indoor environments, and they may have similar sources of pollution.